Claims
- 1. A direct conversion Radio Frequency (RF) transceiver integrated circuit comprising:
a local oscillator that generates a RF local oscillation signal corresponding to a RF channel; a receiver section operably coupled to the local oscillator that receives an incoming RF signal and down converts the incoming RF signal based upon the RF local oscillation signal to produce a baseband signal; a transmitter section operably coupled to the local oscillator that receives an outgoing baseband signal and up converts the outgoing baseband signal to produce an outgoing RF signal; and wherein the transmitter section further comprises:
a power amplifier; a temperature detector that produces an indication of an operating temperature of the power amplifier; and at least one adjustable gain element operably coupled on an input of the power amplifier having a gain setting that is based upon the indication of the operating temperature of the power amplifier.
- 2. The direct conversion RF transceiver of claim 1, wherein:
the transmitter section further comprises a power detector operably coupled to the power amplifier that produces an indication of an output power of the power amplifier; and wherein the at least one adjustable gain element adjusts its gain setting based upon the indication of the output power of the power amplifier.
- 3. The direct conversion RF transceiver of claim 2 further comprising a gain determination module operably coupled to the power amplifier temperature detector to receive the indication of the operating temperature of the power amplifier and that produces the gain setting responsive thereto.
- 4. The direct conversion RF transceiver of claim 2 further comprising a gain determination module operably coupled to the power detector to receive the indication of the output power level of the power amplifier and that produces the gain setting responsive thereto.
- 5. The direct conversion RF transceiver of claim 2, wherein:
the approximate indication of the operating temperature and the indication of the output power of the power amplifier are provided to a coupled baseband processor; the baseband processor determines the gain setting based upon the indication of the operating temperature and the indication of the output power of the power amplifier; and the gain setting is received from the baseband processor.
- 6. The direct conversion RF transceiver of claim 2, wherein the gain setting is further based upon at least one operating characteristic of the power amplifier.
- 7. The direct conversion RF transceiver of claim 2, wherein the power amplifier temperature detector comprises a logic device coupled to receive a fixed current from a current source and proximately located to the power amplifier and circuitry for detecting a voltage drop across the logic device wherein a voltage drop across the logic device reflects a logic device temperature.
- 8. The direct conversion RF transceiver of claim 2 wherein the power amplifier produces a fixed amount of gain and further comprising a plurality of programmable gain amplifiers on an input side of the power amplifier, each coupled to receive gain level inputs to reduce an input gain level to the power amplifier and a corresponding output power level of the power amplifier.
- 9. The direct conversion RF transceiver of claim 8 further comprising a baseband processor for producing the outgoing baseband signal having an adjustable gain wherein the baseband processor adjusts the gain at least partially in response to one of a received output power level of the power amplifier or to a received indication of the temperature of the power amplifier.
- 10. The direct conversion RF transceiver of claim 3 further comprising a low pass filter with an adjustable gain wherein the low pass filter is coupled to receive a gain control input from the gain determination circuit and to adjust its corresponding output gain.
- 11. A direct conversion Radio Frequency (RF) transceiver integrated circuit comprising:
a local oscillator that generates a RF local oscillation signal corresponding to a RF channel; a receiver section operably coupled to the local oscillator that receives an incoming RF signal and down converts the incoming RF signal based upon the RF local oscillation signal to produce a baseband signal; a transmitter section operably coupled to the local oscillator that receives an outgoing baseband signal and up converts the outgoing baseband signal to produce an outgoing RF signal; and wherein the transmitter section further comprises:
a power amplifier; at least one adjustable gain element operably coupled on an input side of the power amplifier; and means for generating a gain level input to the at least one adjustable gain element wherein the means for generating a gain level input generates the gain level input based upon at least one of:
an indication of the operating temperature of the power amplifier; an indication of the output power of the power amplifier; and an indication that power may be reduced to lower signal quality to a specified signal quality metric.
- 12. The direct conversion RF transceiver integrated circuit of claim I 1 wherein the means for generating the gain level input to the at least one adjustable gain element comprises a baseband processor that executes computer instructions defining logic for generating the gain level input.
- 13. The direct conversion RF transceiver integrated circuit of claim 12 wherein the baseband processor generates the gain level input according to either the indication of the operating temperature of the power amplifier or the indication of the output power of the power amplifier, but not both.
- 14. The direct conversion RF transceiver integrated circuit of claim 12 wherein the baseband processor is coupled to receive a control signal specifying whether the gain level input should be set according to either the indication of the operating temperature of the power amplifier or the indication of the output power of the power amplifier.
- 15. The direct conversion RF transceiver integrated circuit of claim 11 wherein the at least one adjustable gain element comprises two programmable gain amplifiers.
- 16. The direct conversion RF transceiver integrated circuit of claim 15 wherein the at least one adjustable gain element comprises a baseband processor with a programmable digital output having adjustable gain.
- 17. The direct conversion RF transceiver integrated circuit of claim 15 wherein the at least one adjustable gain element comprises a low pass filter having adjustable gain.
- 18. The direct conversion RF transceiver integrated circuit of claim 15 wherein the indication of the operating temperature of the power amplifier is provided by a temperature detector.
- 19. The direct conversion RF transceiver integrated circuit of claim 18 wherein the indication of the operating temperature of the power amplifier is provided by a temperature detector comprising a diode proximately coupled to the power amplifier and a voltage detector coupled to detect a voltage drop across the diode.
- 20. The direct conversion RF transceiver integrated circuit of claim 19 wherein the temperature detector further comprises a constant current source coupled to provide a constant current through the diode proximately coupled to the power amplifier.
- 21. The direct conversion RF transceiver integrated circuit of claim 18 wherein the indication of the output power of the power amplifier is provided by a power detector coupled to the power amplifier.
- 22. In a Radio Frequency (RF) transceiver, a method for controlling a gain level of at least one variable gain device, the method comprising:
measuring an output power of a RF power amplifier; measuring an approximate operating temperature of a RF power amplifier; based upon at least one of the output power of the RF power amplifier and the approximate operating temperature and at least one operational characteristic of the RF power amplifier, determining at least one gain value; and generating a gain control input for the at least one variable gain device based upon the at least one gain value.
- 23. The method of claim 22 where the gain control input is generated for a single programmable gain amplifier coupled on an input side of the RF power amplifier.
- 24. The method of claim 22 where the gain control input is generated for at least two programmable gain amplifiers coupled on an input side of the RF power amplifier.
- 25. The method of claim 22 where the gain control input is generated for a digital gain level output of a baseband processor.
- 26. The method of claim 22 wherein a user specifies whether gain adjustments are made according to the output power of the RF power amplifier or according the approximate operating temperature and at least one operational characteristic of the RF power amplifier.
- 27. The method of claim 26 wherein the user specifies whether the gain adjustments are made according to the output power of the RF power amplifier or according the approximate operating temperature and at least one operational characteristic of the RF power amplifier by making a selection with a switch.
- 28. The method of claim 27 wherein the switch is a software switch.
- 29. The method of claim 27 wherein the switch is a hardware switch.
- 30. The method of claim 26 wherein the user specifies whether the gain adjustments are made according to the output power of the RF power amplifier or according the approximate operating temperature and at least one operational characteristic of the RF power amplifier by installing computer instructions for execution by a baseband processor coupled to receive the computer instructions that define how the gain adjustments are made.
CROSS-REFERENCE TO RELATED APPLICATION(S)
[0001] This application claims priority to and incorporates by reference U.S. Utility Application entitled, “Local Oscillator Frequency Correction in a Direct Conversion RF Transceiver” having a serial number of 10/255,378 and a filing date of Sep. 26, 2002, and U.S. Utility Application entitled, “A Direct Conversion RF Transceiver For Wireless Communications”, having a Ser. No. 10/052,870 and a filing date of Jan. 18, 2002, and U.S. Utility Application entitled, “RF Variable Gain Amplifier. With Fast Acting DC Offset Cancellation”, having a serial number of 10/274,655 and a filing date of Oct. 21, 2002.